TY - JOUR A1 - Schubert, Jonathan A1 - Schulze, Andrea A1 - Prodromou, Chrisostomos A1 - Neuweiler, Hannes T1 - Two-colour single-molecule photoinduced electron transfer fluorescence imaging microscopy of chaperone dynamics JF - Nature Communications N2 - Many proteins are molecular machines, whose function is dependent on multiple conformational changes that are initiated and tightly controlled through biochemical stimuli. Their mechanistic understanding calls for spectroscopy that can probe simultaneously such structural coordinates. Here we present two-colour fluorescence microscopy in combination with photoinduced electron transfer (PET) probes as a method that simultaneously detects two structural coordinates in single protein molecules, one colour per coordinate. This contrasts with the commonly applied resonance energy transfer (FRET) technique that requires two colours per coordinate. We demonstrate the technique by directly and simultaneously observing three critical structural changes within the Hsp90 molecular chaperone machinery. Our results reveal synchronicity of conformational motions at remote sites during ATPase-driven closure of the Hsp90 molecular clamp, providing evidence for a cooperativity mechanism in the chaperone’s catalytic cycle. Single-molecule PET fluorescence microscopy opens up avenues in the multi-dimensional exploration of protein dynamics and allosteric mechanisms. KW - chaperones KW - fluorescence spectroscopy KW - molecular conformation KW - single-molecule biophysics KW - total internal reflection microscopy Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-265754 VL - 12 ER - TY - JOUR A1 - Rajab, Suhaila A1 - Bismin, Leah A1 - Schwarze, Simone A1 - Pinggera, Alexandra A1 - Greger, Ingo H. A1 - Neuweiler, Hannes T1 - Allosteric coupling of sub-millisecond clamshell motions in ionotropic glutamate receptor ligand-binding domains JF - Communications Biology N2 - Ionotropic glutamate receptors (iGluRs) mediate signal transmission in the brain and are important drug targets. Structural studies show snapshots of iGluRs, which provide a mechanistic understanding of gating, yet the rapid motions driving the receptor machinery are largely elusive. Here we detect kinetics of conformational change of isolated clamshell-shaped ligand-binding domains (LBDs) from the three major iGluR sub-types, which initiate gating upon binding of agonists. We design fluorescence probes to measure domain motions through nanosecond fluorescence correlation spectroscopy. We observe a broad kinetic spectrum of LBD dynamics that underlie activation of iGluRs. Microsecond clamshell motions slow upon dimerization and freeze upon binding of full and partial agonists. We uncover allosteric coupling within NMDA LBD hetero-dimers, where binding of L-glutamate to the GluN2A LBD stalls clamshell motions of the glycine-binding GluN1 LBD. Our results reveal rapid LBD dynamics across iGluRs and suggest a mechanism of negative allosteric cooperativity in NMDA receptors. KW - fluorescence spectroscopy KW - kinetics KW - ligand-gated ion channels KW - molecular neuroscience Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-261678 VL - 4 IS - 1 ER -